A high‐efficiency gene silencing in plants using two‐hit asymmetrical artificial MicroRNAs

Author:

Teotia Sachin123,Wang Xiaoran4,Zhou Na4,Wang Mengmeng4,Liu Haiping2,Qin Jun5,Han Dianwei6,Li Chingwen7,Li Christine E.7,Pan Shangjin5,Tang Haifeng5,Kang Wenjun5,Zhang Zhanhui1,Tang Xiaoqing25,Peng Ting1ORCID,Tang Guiliang1258ORCID

Affiliation:

1. College of Agronomy Henan Agricultural University Zhengzhou China

2. Department of Biological Sciences Michigan Technological University Houghton Michigan USA

3. Department of Biotechnology Sharda University Greater Noida India

4. School of Life Sciences Henan Agricultural University Zhengzhou China

5. Gene Suppression Laboratory, Department of Plant and Soil Sciences and Kentucky Tobacco and Research Development Center University of Kentucky Lexington Kentucky USA

6. Department of Computer Science University of Kentucky Lexington Kentucky USA

7. SQS Lexington Delivery Center Lexington Kentucky USA

8. Guangdong Provincial Key Laboratory for Plant Epigenetics, Longhua Bioindustry and Innovation Research Institute, College of Life Sciences and Oceanography Shenzhen University Shenzhen China

Abstract

SummaryMicroRNAs (miRNAs) are small non‐coding RNA molecules that play a crucial role in gene regulation. They are produced through an enzyme‐guided process called dicing and have an asymmetrical structure with two nucleotide overhangs at the 3′ ends. Artificial microRNAs (amiRNAs or amiRs) are designed to mimic the structure of miRNAs and can be used to silence specific genes of interest. Traditionally, amiRNAs are designed based on an endogenous miRNA precursor with certain mismatches at specific positions to increase their efficiency. In this study, the authors modified the highly expressed miR168a in Arabidopsis thaliana by replacing the single miR168 stem‐loop/duplex with tandem asymmetrical amiRNA duplexes that follow the statistical rules of miRNA secondary structures. These tandem amiRNA duplexes, called “two‐hit” amiRNAs, were shown to have a higher efficiency in silencing GFP and endogenous PDS reporter genes compared to traditional “one‐hit” amiRNAs. The authors also demonstrated the effectiveness of “two‐hit” amiRNAs in silencing genes involved in miRNA, tasiRNA, and hormone signalling pathways, individually or in families. Importantly, “two‐hit” amiRNAs were also able to over‐express endogenous miRNAs for their functions. The authors compare “two‐hit” amiRNA technology with CRISPR/Cas9 and provide a web‐based amiRNA designer for easy design and wide application in plants and even animals.

Funder

National Natural Science Foundation of China

National Science Foundation

Publisher

Wiley

Subject

Plant Science,Agronomy and Crop Science,Biotechnology

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